Primary Frequency Response Improvement in Interconnected Power Systems Using Electric Vehicle Virtual Power Plants
Abstract
:1. Introduction
- Proposing of electric vehicle aggregator for frequency studies.
- Suggesting electric vehicle contribution in the provision of ancillary services for smart grids.
- Proposing virtual power plant based on the available electric vehicle stored reserves.
- Improving the primary frequency response in power systems using vehicle-to-grid technique.
- Suggesting a simple and accurate frequency response model for future power system studies.
- Testing the proposed method on real-world power system.
2. Primary Frequency Control
2.1. Virtual Power Plant Overview
- Market-Based Virtual Power Plant (MBVPP)
- Generic Virtual Power Plant (GVPP)
- Commercial Virtual Power Plant (CVPP)
- Technical Virtual Power Plant (TVPP)
- Environmental Virtual Power Plant (EVPP)
- Electric Vehicle Virtual Power Plant (EV-VPP)
- Centralized Controlled Virtual Power Plant (CCVPP)
- Distributed Controlled Virtual Power Plant (DCVPP)
- Fully Distributed Controlled Virtual Power Plant (FDCVPP)
2.2. Frequency Control Overview
3. Online EV-Based VPP for Primary Reserve
3.1. Multi Agent EV Based Online VPP
3.2. Primary Reserve Calculation
- Group 1 constraints:If {Connected EV to the grid status: NO) Or (Connected EV to the grid status: YES; and ()}, Then put EV in Group 1.
- Group 2 constraints:If {Connected EV to the grid status: YES; and ()} Then place EV in Group 2.
- Group 3 constraints:If Connected EV to the grid status: YES; and (Charging status: idle), Then place EV in Group 3.
- Group 1 does not provide any primary reserve to the power system.
- EVs in Group 2 provide primary reserve by stopping their charge and injecting their power back into grid as follows
- EVs in group 3 provide primary reserve for primary frequency control by discharging their power only as follows
4. EV Dynamic Model for Frequency Evaluation
5. The Case Study System
6. Simulations and Discussions
7. Comparison Study
8. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
EV | Electric vehicle |
VPP | Virtual power plant |
SOC | State of charge |
LFC | Load frequency control |
DG | Distributed generation |
MBVPP | Market-Based Virtual Power Plant |
GVPP | Generic Virtual Power Plant |
CVPP | Commercial Virtual Power Plant |
TVPP | Technical Virtual Power Plant |
EVPP | Environmental Virtual Power Plant |
EV-VPP | Electric Vehicle Virtual Power Plant |
CCVPP | Centralized Controlled Virtual Power Plant |
DCVPP | Distributed Controlled Virtual Power Plant |
FDCVPP | Fully Distributed Controlled Virtual Power Plant |
H | All synchronous machines in the system |
D | The frequency sensitivity load-damping |
Appendix A. Parameters of the Studied Power System Model
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Classification of EV | L7e | M1 | N1 | N2 |
---|---|---|---|---|
EV charging power [kW] | 3 | 3 | 3 | 10 |
EV battery capacity [kWh] | 15 | 72 | 40 | 120 |
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Alhelou, H.H.; Siano, P.; Tipaldi, M.; Iervolino, R.; Mahfoud, F. Primary Frequency Response Improvement in Interconnected Power Systems Using Electric Vehicle Virtual Power Plants. World Electr. Veh. J. 2020, 11, 40. https://doi.org/10.3390/wevj11020040
Alhelou HH, Siano P, Tipaldi M, Iervolino R, Mahfoud F. Primary Frequency Response Improvement in Interconnected Power Systems Using Electric Vehicle Virtual Power Plants. World Electric Vehicle Journal. 2020; 11(2):40. https://doi.org/10.3390/wevj11020040
Chicago/Turabian StyleAlhelou, Hassan Haes, Pierluigi Siano, Massimo Tipaldi, Raffaele Iervolino, and Feras Mahfoud. 2020. "Primary Frequency Response Improvement in Interconnected Power Systems Using Electric Vehicle Virtual Power Plants" World Electric Vehicle Journal 11, no. 2: 40. https://doi.org/10.3390/wevj11020040
APA StyleAlhelou, H. H., Siano, P., Tipaldi, M., Iervolino, R., & Mahfoud, F. (2020). Primary Frequency Response Improvement in Interconnected Power Systems Using Electric Vehicle Virtual Power Plants. World Electric Vehicle Journal, 11(2), 40. https://doi.org/10.3390/wevj11020040